智能系统数字孪生中的知识等价

IF 0.7 4区 计算机科学 Q4 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Nan Zhang, Rami Bahsoon, Nikos Tziritas, Georgios Theodoropoulos
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引用次数: 0

摘要

数字孪生包含正在研究的物理世界的最新数据驱动模型,并可以使用模拟来优化物理世界。然而,只有当模型与物理世界等效时,数字孪生所做的分析才是有效和可靠的。维护这样一个等效的模型是具有挑战性的,特别是当被建模的物理系统是智能和自治的。本文特别关注智能系统的数字孪生模型,其中系统具有知识感知但能力有限。数字孪生通过在模拟环境中积累更多的知识,在元层面上改进了物理系统的行为。这种智能物理系统的建模需要在虚拟空间中复制知识感知能力。需要新的等效保持技术,特别是在模型和物理系统之间的知识同步方面。本文提出了知识等价的概念,并提出了一种通过知识比较和更新来维护等价的方法。对该方法的定量分析证实,与状态等价相比,知识等价维护可以容忍偏差,从而减少不必要的更新,并在更新开销和仿真可靠性之间实现更多的帕累托有效解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge Equivalence in Digital Twins of Intelligent Systems

A digital twin contains up-to-date data-driven models of the physical world being studied and can use simulation to optimise the physical world. However, the analysis made by the digital twin is valid and reliable only when the model is equivalent to the physical world. Maintaining such an equivalent model is challenging, especially when the physical systems being modelled are intelligent and autonomous. The paper focuses in particular on digital twin models of intelligent systems where the systems are knowledge-aware but with limited capability. The digital twin improves the acting of the physical system at a meta-level by accumulating more knowledge in the simulated environment. The modelling of such an intelligent physical system requires replicating the knowledge-awareness capability in the virtual space. Novel equivalence maintaining techniques are needed, especially in synchronising the knowledge between the model and the physical system. This paper proposes the notion of knowledge equivalence and an equivalence maintaining approach by knowledge comparison and updates. A quantitative analysis of the proposed approach confirms that compared to state equivalence, knowledge equivalence maintenance can tolerate deviation thus reducing unnecessary updates and achieve more Pareto efficient solutions for the trade-off between update overhead and simulation reliability.

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来源期刊
ACM Transactions on Modeling and Computer Simulation
ACM Transactions on Modeling and Computer Simulation 工程技术-计算机:跨学科应用
CiteScore
2.50
自引率
22.20%
发文量
29
审稿时长
>12 weeks
期刊介绍: The ACM Transactions on Modeling and Computer Simulation (TOMACS) provides a single archival source for the publication of high-quality research and developmental results referring to all phases of the modeling and simulation life cycle. The subjects of emphasis are discrete event simulation, combined discrete and continuous simulation, as well as Monte Carlo methods. The use of simulation techniques is pervasive, extending to virtually all the sciences. TOMACS serves to enhance the understanding, improve the practice, and increase the utilization of computer simulation. Submissions should contribute to the realization of these objectives, and papers treating applications should stress their contributions vis-á-vis these objectives.
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